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Comparison · 3 models · Updated Oct 4, 2026

Qwen3.7 Max vs Muse Spark 1.2 vs Gemini 3.5 Flash

Muse Spark 1.2 comes out ahead, 72 to 69 and 58 on our weighted score, and it is the cheaper option too.

  1. Alibaba (Qwen)

    Qwen3.7 Max

    Released May 21, 2026

    58/100
    • ECI153.7
    • Price$2.50 / $7.50
    • Context1M
  2. Our pick

    Meta

    Muse Spark 1.2

    Released Aug 5, 2026

    72/100
    • ECI155.0
    • Price$1.25 / $4.25
    • Context1.05M
  3. Google

    Gemini 3.5 Flash

    Released May 19, 2026

    69/100
    • ECI154.5
    • Price$1.50 / $9.00
    • Context1.05M
01 — Verdict

Muse Spark 1.2 is our pick

Muse Spark 1.2 is the better all-round choice, scoring 72/100 against Gemini 3.5 Flash (69) and Qwen3.7 Max (58). It leads on price. The score weighs capability 50%, price 25%, inputs & features 15%, context window 10%.

  • CapabilityMuse Spark 1.2Capabilities Index (ECI): Muse Spark 1.2 155.0 · Gemini 3.5 Flash 154.5 · Qwen3.7 Max 153.7
  • Lowest priceMuse Spark 1.2Muse Spark 1.2 $2.00 · Gemini 3.5 Flash $3.38 · Qwen3.7 Max $3.75 per 1M tokens (3:1 blend)
  • Longest contextMuse Spark 1.2 and Gemini 3.5 FlashMuse Spark 1.2 1,048,576 · Gemini 3.5 Flash 1,048,576 · Qwen3.7 Max 1,000,000 tokens
  • Widest inputsMuse Spark 1.2 and Gemini 3.5 FlashQwen3.7 Max: Text · Muse Spark 1.2: Text, Images, PDFs, Audio, Video · Gemini 3.5 Flash: Text, Images, PDFs, Audio, Video
  • Self-hostingNo open weightsAll three are available only through APIs
How the score is built
MeasureWeightQwen3.7 MaxMuse Spark 1.2Gemini 3.5 Flash
CapabilityCapabilities Index (ECI)50%838484
Price25%233625
Inputs & features15%35100100
Context window10%606161
Overall100%58/10072/10069/100
02 — Side by side

Every spec in one table

Highlighted cells lead their row. Dashes mean the data is not published.

Qwen3.7 Max vs Muse Spark 1.2 vs Gemini 3.5 Flash specifications side by side
SpecificationQwen3.7 MaxAlibaba (Qwen)Muse Spark 1.2MetaGemini 3.5 FlashGoogle
Capability
Capabilities Index (ECI)153.7155.0 (best)154.5
ECI rank#37 of 148#30 of 148 (best)#33 of 148
GPQA DiamondGraduate-level science questions90.9%—92.8% (best)
FrontierMath Tiers 1–3Research-level mathematics64.6% (best)—62.8%
OTIS Mock AIME 2024–2025Competition mathematics95.6%—95.6%
SWE-bench VerifiedFixing real GitHub issues77.3%—79.3% (best)
SimpleQA VerifiedShort factual questions55.8%60.3%66.2% (best)
Price per million tokens
Input$2.50$1.25 (best)$1.50
Output$7.50$4.25 (best)$9.00
Cached input$0.50$0.15 (best)$0.15 (best)
Blended (3:1)$3.75$2.00 (best)$3.38
Long-context rateSame rateSame rateSame rate
Price sourceOfficial Alibaba APIOfficial Meta APIOfficial Google API
Limits
Context window1,000,000 tokens1,048,576 tokens (best)1,048,576 tokens (best)
Max output65,536 tokens131,072 tokens (best)65,536 tokens
Inputs and features
TextYesYesYes
ImagesNoYesYes
PDFsNoYesYes
AudioNoYesYes
VideoNoYesYes
ReasoningYesYesminimal · low · medium · high · xhighYesminimal · low · medium · high
Tool callingYesYesYes
Structured outputNoYesYes
Availability
WeightsProprietaryProprietaryProprietary
API model IDqwen3.7-maxmuse-spark-1.2gemini-3.5-flash
API providers261532 (best)
ReleasedMay 21, 2026Aug 5, 2026May 19, 2026
Knowledge cutoff——Jan 2025
03 — Cost

What would a month cost?

Enter your expected volume in millions of tokens. List prices only; caching and batch discounts would lower these.

  • Qwen3.7 Max$40.00
  • Muse Spark 1.2$21.00
  • Gemini 3.5 Flash$33.00
04 — Questions

Which should you choose?

Which is better: Qwen3.7 Max, Muse Spark 1.2 or Gemini 3.5 Flash?

Muse Spark 1.2 is the better all-round choice, scoring 72/100 against Gemini 3.5 Flash (69) and Qwen3.7 Max (58). It leads on price. The score weighs capability 50%, price 25%, inputs & features 15%, context window 10%.

Which is cheaper, Qwen3.7 Max, Muse Spark 1.2 or Gemini 3.5 Flash?

Muse Spark 1.2 is cheaper at $1.25 input / $4.25 output per million tokens (official Meta API price). Gemini 3.5 Flash costs $1.50 input / $9.00 output per million tokens (official Google API price); Qwen3.7 Max costs $2.50 input / $7.50 output per million tokens (official Alibaba API price). At a typical mix of three input tokens to one output token, that is $2.00 per million tokens for Muse Spark 1.2 versus $3.38 for Gemini 3.5 Flash (1.7× as much) and $3.75 for Qwen3.7 Max (1.9× as much).

Which scores higher on benchmarks?

Muse Spark 1.2 scores higher on the Capabilities Index (ECI): Muse Spark 1.2 155.0 (#30 of 148), Gemini 3.5 Flash 154.5 (#33 of 148) and Qwen3.7 Max 153.7 (#37 of 148). The confidence ranges of the top two overlap (152.8–157.5 vs 152.5–156.6), so treat the gap as small. On individual benchmarks: SimpleQA Verified — Gemini 3.5 Flash 66.2%, Muse Spark 1.2 60.3%, Qwen3.7 Max 55.8%.

Which is better for coding?

There are no published SWE-bench Verified results for Muse Spark 1.2 yet, so there is no like-for-like coding score. On overall capability, Muse Spark 1.2 leads, which tends to carry over to coding, but test on your own codebase. All three support tool calling for agent workflows.

Which has the bigger context window?

Muse Spark 1.2 and Gemini 3.5 Flash have the largest context windows (1,048,576 and 1,048,576 tokens), against 1,000,000 for Qwen3.7 Max. Maximum output per response: Qwen3.7 Max up to 65,536, Muse Spark 1.2 up to 131,072, Gemini 3.5 Flash up to 65,536 tokens.

Which can read images, PDFs, audio or video?

Qwen3.7 Max accepts text; Muse Spark 1.2 accepts text, images, PDFs, audio and video; Gemini 3.5 Flash accepts text, images, PDFs, audio and video. Muse Spark 1.2 handles the widest range of inputs.

Are any of these open source?

No. Qwen3.7 Max, Muse Spark 1.2 and Gemini 3.5 Flash are proprietary and only available through APIs and apps.

Which is newer?

Muse Spark 1.2 is the newest, released Aug 5, 2026. Qwen3.7 Max came out May 21, 2026; Gemini 3.5 Flash came out May 19, 2026. Knowledge cutoff: Gemini 3.5 Flash Jan 2025.

How do you decide the winner?

Each model gets a 0–100 score on capability (50%, independent benchmark results); price (25%, blended price per million tokens (3 input : 1 output), log scale); inputs & features (15%, image, PDF, audio and video input, tool calling, structured output and reasoning); context window (10%, maximum tokens per request, log scale). Dimensions missing for any model are dropped and the remaining weights rescaled, so every model is judged on the same evidence. Specs and prices come from public model listings and the labs’ own API pages; capability scores come from independent benchmark runs. Data updated Oct 4, 2026.